kern_history.c revision 1.13 1 1.13 pgoyette /* $NetBSD: kern_history.c,v 1.13 2017/01/10 00:50:57 pgoyette Exp $ */
2 1.1 mrg
3 1.1 mrg /*
4 1.1 mrg * Copyright (c) 1997 Charles D. Cranor and Washington University.
5 1.1 mrg * All rights reserved.
6 1.1 mrg *
7 1.1 mrg * Redistribution and use in source and binary forms, with or without
8 1.1 mrg * modification, are permitted provided that the following conditions
9 1.1 mrg * are met:
10 1.1 mrg * 1. Redistributions of source code must retain the above copyright
11 1.1 mrg * notice, this list of conditions and the following disclaimer.
12 1.1 mrg * 2. Redistributions in binary form must reproduce the above copyright
13 1.1 mrg * notice, this list of conditions and the following disclaimer in the
14 1.1 mrg * documentation and/or other materials provided with the distribution.
15 1.1 mrg *
16 1.1 mrg * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
17 1.1 mrg * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
18 1.1 mrg * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
19 1.1 mrg * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
20 1.1 mrg * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
21 1.1 mrg * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
22 1.1 mrg * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
23 1.1 mrg * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
24 1.1 mrg * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
25 1.1 mrg * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
26 1.1 mrg *
27 1.1 mrg * from: NetBSD: uvm_stat.c,v 1.36 2011/02/02 15:13:34 chuck Exp
28 1.1 mrg * from: Id: uvm_stat.c,v 1.1.2.3 1997/12/19 15:01:00 mrg Exp
29 1.1 mrg */
30 1.1 mrg
31 1.1 mrg /*
32 1.1 mrg * subr_kernhist.c
33 1.1 mrg */
34 1.1 mrg
35 1.1 mrg #include <sys/cdefs.h>
36 1.13 pgoyette __KERNEL_RCSID(0, "$NetBSD: kern_history.c,v 1.13 2017/01/10 00:50:57 pgoyette Exp $");
37 1.1 mrg
38 1.5 skrll #include "opt_ddb.h"
39 1.1 mrg #include "opt_kernhist.h"
40 1.5 skrll #include "opt_syscall_debug.h"
41 1.5 skrll #include "opt_usb.h"
42 1.1 mrg #include "opt_uvmhist.h"
43 1.7 pgoyette #include "opt_biohist.h"
44 1.9 pgoyette #include "opt_sysctl.h"
45 1.1 mrg
46 1.1 mrg #include <sys/param.h>
47 1.1 mrg #include <sys/systm.h>
48 1.1 mrg #include <sys/cpu.h>
49 1.9 pgoyette #include <sys/sysctl.h>
50 1.1 mrg #include <sys/kernhist.h>
51 1.9 pgoyette #include <sys/kmem.h>
52 1.1 mrg
53 1.2 mrg #ifdef UVMHIST
54 1.1 mrg #include <uvm/uvm.h>
55 1.2 mrg #endif
56 1.2 mrg
57 1.2 mrg #ifdef USB_DEBUG
58 1.2 mrg #include <dev/usb/usbhist.h>
59 1.2 mrg #endif
60 1.2 mrg
61 1.7 pgoyette #ifdef BIOHIST
62 1.8 pgoyette #include <sys/biohist.h>
63 1.7 pgoyette #endif
64 1.7 pgoyette
65 1.2 mrg #ifdef SYSCALL_DEBUG
66 1.2 mrg KERNHIST_DECL(scdebughist);
67 1.2 mrg #endif
68 1.1 mrg
69 1.9 pgoyette struct addr_xlt {
70 1.9 pgoyette const char *addr;
71 1.9 pgoyette size_t len;
72 1.9 pgoyette uint32_t offset;
73 1.9 pgoyette };
74 1.9 pgoyette
75 1.1 mrg /*
76 1.1 mrg * globals
77 1.1 mrg */
78 1.1 mrg
79 1.1 mrg struct kern_history_head kern_histories;
80 1.13 pgoyette bool kernhist_sysctl_ready = 0;
81 1.1 mrg
82 1.1 mrg int kernhist_print_enabled = 1;
83 1.1 mrg
84 1.9 pgoyette int sysctl_hist_node;
85 1.9 pgoyette
86 1.12 christos static int sysctl_kernhist_helper(SYSCTLFN_PROTO);
87 1.12 christos
88 1.1 mrg #ifdef DDB
89 1.1 mrg
90 1.1 mrg /*
91 1.1 mrg * prototypes
92 1.1 mrg */
93 1.1 mrg
94 1.4 skrll void kernhist_dump(struct kern_history *,
95 1.4 skrll void (*)(const char *, ...) __printflike(1, 2));
96 1.9 pgoyette void kernhist_dumpmask(uint32_t);
97 1.4 skrll static void kernhist_dump_histories(struct kern_history *[],
98 1.4 skrll void (*)(const char *, ...) __printflike(1, 2));
99 1.1 mrg
100 1.1 mrg
101 1.1 mrg /*
102 1.1 mrg * call this from ddb
103 1.1 mrg *
104 1.1 mrg * expects the system to be quiesced, no locking
105 1.1 mrg */
106 1.1 mrg void
107 1.4 skrll kernhist_dump(struct kern_history *l, void (*pr)(const char *, ...))
108 1.1 mrg {
109 1.1 mrg int lcv;
110 1.1 mrg
111 1.1 mrg lcv = l->f;
112 1.1 mrg do {
113 1.1 mrg if (l->e[lcv].fmt)
114 1.4 skrll kernhist_entry_print(&l->e[lcv], pr);
115 1.1 mrg lcv = (lcv + 1) % l->n;
116 1.1 mrg } while (lcv != l->f);
117 1.1 mrg }
118 1.1 mrg
119 1.1 mrg /*
120 1.1 mrg * print a merged list of kern_history structures
121 1.1 mrg */
122 1.1 mrg static void
123 1.4 skrll kernhist_dump_histories(struct kern_history *hists[], void (*pr)(const char *, ...))
124 1.1 mrg {
125 1.11 pgoyette struct bintime bt;
126 1.1 mrg int cur[MAXHISTS];
127 1.1 mrg int lcv, hi;
128 1.1 mrg
129 1.1 mrg /* find the first of each list */
130 1.1 mrg for (lcv = 0; hists[lcv]; lcv++)
131 1.1 mrg cur[lcv] = hists[lcv]->f;
132 1.1 mrg
133 1.1 mrg /*
134 1.1 mrg * here we loop "forever", finding the next earliest
135 1.1 mrg * history entry and printing it. cur[X] is the current
136 1.1 mrg * entry to test for the history in hists[X]. if it is
137 1.1 mrg * -1, then this history is finished.
138 1.1 mrg */
139 1.1 mrg for (;;) {
140 1.1 mrg hi = -1;
141 1.11 pgoyette bt.sec = 0; bt.frac = 0;
142 1.1 mrg
143 1.1 mrg /* loop over each history */
144 1.1 mrg for (lcv = 0; hists[lcv]; lcv++) {
145 1.1 mrg restart:
146 1.1 mrg if (cur[lcv] == -1)
147 1.1 mrg continue;
148 1.2 mrg if (!hists[lcv]->e)
149 1.2 mrg continue;
150 1.1 mrg
151 1.1 mrg /*
152 1.1 mrg * if the format is empty, go to the next entry
153 1.1 mrg * and retry.
154 1.1 mrg */
155 1.1 mrg if (hists[lcv]->e[cur[lcv]].fmt == NULL) {
156 1.1 mrg cur[lcv] = (cur[lcv] + 1) % (hists[lcv]->n);
157 1.1 mrg if (cur[lcv] == hists[lcv]->f)
158 1.1 mrg cur[lcv] = -1;
159 1.1 mrg goto restart;
160 1.1 mrg }
161 1.1 mrg
162 1.1 mrg /*
163 1.1 mrg * if the time hasn't been set yet, or this entry is
164 1.11 pgoyette * earlier than the current bt, set the time and history
165 1.1 mrg * index.
166 1.1 mrg */
167 1.11 pgoyette if (bt.sec == 0 ||
168 1.11 pgoyette bintimecmp(&hists[lcv]->e[cur[lcv]].bt, &bt, <)) {
169 1.11 pgoyette bt = hists[lcv]->e[cur[lcv]].bt;
170 1.1 mrg hi = lcv;
171 1.1 mrg }
172 1.1 mrg }
173 1.1 mrg
174 1.1 mrg /* if we didn't find any entries, we must be done */
175 1.1 mrg if (hi == -1)
176 1.1 mrg break;
177 1.1 mrg
178 1.1 mrg /* print and move to the next entry */
179 1.4 skrll kernhist_entry_print(&hists[hi]->e[cur[hi]], pr);
180 1.1 mrg cur[hi] = (cur[hi] + 1) % (hists[hi]->n);
181 1.1 mrg if (cur[hi] == hists[hi]->f)
182 1.1 mrg cur[hi] = -1;
183 1.1 mrg }
184 1.1 mrg }
185 1.1 mrg
186 1.1 mrg /*
187 1.1 mrg * call this from ddb. `bitmask' is from <sys/kernhist.h>. it
188 1.1 mrg * merges the named histories.
189 1.1 mrg *
190 1.1 mrg * expects the system to be quiesced, no locking
191 1.1 mrg */
192 1.1 mrg void
193 1.9 pgoyette kernhist_dumpmask(uint32_t bitmask) /* XXX only support 32 hists */
194 1.1 mrg {
195 1.1 mrg struct kern_history *hists[MAXHISTS + 1];
196 1.1 mrg int i = 0;
197 1.1 mrg
198 1.1 mrg #ifdef UVMHIST
199 1.1 mrg if ((bitmask & KERNHIST_UVMMAPHIST) || bitmask == 0)
200 1.1 mrg hists[i++] = &maphist;
201 1.1 mrg
202 1.1 mrg if ((bitmask & KERNHIST_UVMPDHIST) || bitmask == 0)
203 1.1 mrg hists[i++] = &pdhist;
204 1.1 mrg
205 1.1 mrg if ((bitmask & KERNHIST_UVMUBCHIST) || bitmask == 0)
206 1.1 mrg hists[i++] = &ubchist;
207 1.1 mrg
208 1.1 mrg if ((bitmask & KERNHIST_UVMLOANHIST) || bitmask == 0)
209 1.1 mrg hists[i++] = &loanhist;
210 1.1 mrg #endif
211 1.1 mrg
212 1.2 mrg #ifdef USB_DEBUG
213 1.2 mrg if ((bitmask & KERNHIST_USBHIST) || bitmask == 0)
214 1.2 mrg hists[i++] = &usbhist;
215 1.2 mrg #endif
216 1.2 mrg
217 1.2 mrg #ifdef SYSCALL_DEBUG
218 1.2 mrg if ((bitmask & KERNHIST_SCDEBUGHIST) || bitmask == 0)
219 1.2 mrg hists[i++] = &scdebughist;
220 1.2 mrg #endif
221 1.2 mrg
222 1.7 pgoyette #ifdef BIOHIST
223 1.7 pgoyette if ((bitmask & KERNHIST_BIOHIST) || bitmask == 0)
224 1.7 pgoyette hists[i++] = &biohist;
225 1.7 pgoyette #endif
226 1.7 pgoyette
227 1.1 mrg hists[i] = NULL;
228 1.1 mrg
229 1.4 skrll kernhist_dump_histories(hists, printf);
230 1.1 mrg }
231 1.1 mrg
232 1.1 mrg /*
233 1.1 mrg * kernhist_print: ddb hook to print kern history
234 1.1 mrg */
235 1.1 mrg void
236 1.4 skrll kernhist_print(void *addr, void (*pr)(const char *, ...) __printflike(1,2))
237 1.1 mrg {
238 1.4 skrll struct kern_history *h;
239 1.4 skrll
240 1.4 skrll LIST_FOREACH(h, &kern_histories, list) {
241 1.4 skrll if (h == addr)
242 1.4 skrll break;
243 1.4 skrll }
244 1.4 skrll
245 1.4 skrll if (h == NULL) {
246 1.4 skrll struct kern_history *hists[MAXHISTS + 1];
247 1.4 skrll int i = 0;
248 1.4 skrll #ifdef UVMHIST
249 1.4 skrll hists[i++] = &maphist;
250 1.4 skrll hists[i++] = &pdhist;
251 1.4 skrll hists[i++] = &ubchist;
252 1.4 skrll hists[i++] = &loanhist;
253 1.4 skrll #endif
254 1.4 skrll #ifdef USB_DEBUG
255 1.4 skrll hists[i++] = &usbhist;
256 1.4 skrll #endif
257 1.4 skrll
258 1.4 skrll #ifdef SYSCALL_DEBUG
259 1.4 skrll hists[i++] = &scdebughist;
260 1.4 skrll #endif
261 1.7 pgoyette #ifdef BIOHIST
262 1.7 pgoyette hists[i++] = &biohist;
263 1.7 pgoyette #endif
264 1.4 skrll hists[i] = NULL;
265 1.4 skrll
266 1.4 skrll kernhist_dump_histories(hists, pr);
267 1.4 skrll } else {
268 1.4 skrll kernhist_dump(h, pr);
269 1.4 skrll }
270 1.1 mrg }
271 1.1 mrg
272 1.1 mrg #endif
273 1.9 pgoyette
274 1.9 pgoyette /*
275 1.9 pgoyette * sysctl interface
276 1.9 pgoyette */
277 1.9 pgoyette
278 1.9 pgoyette /*
279 1.13 pgoyette * sysctl_kernhist_new()
280 1.9 pgoyette *
281 1.13 pgoyette * If the specified history (or, if no history is specified, any
282 1.13 pgoyette * history) does not already have a sysctl node (under kern.hist)
283 1.13 pgoyette * we create a new one and record it's node number.
284 1.9 pgoyette */
285 1.13 pgoyette void
286 1.13 pgoyette sysctl_kernhist_new(struct kern_history *hist)
287 1.9 pgoyette {
288 1.9 pgoyette int error;
289 1.9 pgoyette struct kern_history *h;
290 1.9 pgoyette const struct sysctlnode *rnode = NULL;
291 1.9 pgoyette
292 1.13 pgoyette if (kernhist_sysctl_ready == 0)
293 1.13 pgoyette return;
294 1.13 pgoyette
295 1.9 pgoyette LIST_FOREACH(h, &kern_histories, list) {
296 1.13 pgoyette if (hist && h != hist)
297 1.13 pgoyette continue;
298 1.9 pgoyette if (h->s != 0)
299 1.9 pgoyette continue;
300 1.9 pgoyette error = sysctl_createv(NULL, 0, NULL, &rnode,
301 1.9 pgoyette CTLFLAG_PERMANENT,
302 1.9 pgoyette CTLTYPE_STRUCT, h->name,
303 1.9 pgoyette SYSCTL_DESCR("history data"),
304 1.9 pgoyette sysctl_kernhist_helper, 0, NULL, 0,
305 1.9 pgoyette CTL_KERN, sysctl_hist_node, CTL_CREATE, CTL_EOL);
306 1.9 pgoyette if (error == 0)
307 1.9 pgoyette h->s = rnode->sysctl_num;
308 1.13 pgoyette if (hist == h)
309 1.13 pgoyette break;
310 1.9 pgoyette }
311 1.9 pgoyette }
312 1.9 pgoyette
313 1.9 pgoyette /*
314 1.9 pgoyette * sysctl_kerhnist_init()
315 1.9 pgoyette *
316 1.9 pgoyette * Create the 2nd level "hw.hist" sysctl node
317 1.9 pgoyette */
318 1.9 pgoyette void
319 1.9 pgoyette sysctl_kernhist_init(void)
320 1.9 pgoyette {
321 1.9 pgoyette const struct sysctlnode *rnode = NULL;
322 1.9 pgoyette
323 1.9 pgoyette sysctl_createv(NULL, 0, NULL, &rnode,
324 1.9 pgoyette CTLFLAG_PERMANENT,
325 1.9 pgoyette CTLTYPE_NODE, "hist",
326 1.9 pgoyette SYSCTL_DESCR("kernel history tables"),
327 1.9 pgoyette sysctl_kernhist_helper, 0, NULL, 0,
328 1.9 pgoyette CTL_KERN, CTL_CREATE, CTL_EOL);
329 1.9 pgoyette sysctl_hist_node = rnode->sysctl_num;
330 1.9 pgoyette
331 1.13 pgoyette kernhist_sysctl_ready = 1;
332 1.13 pgoyette
333 1.13 pgoyette sysctl_kernhist_new(NULL);
334 1.9 pgoyette }
335 1.9 pgoyette
336 1.9 pgoyette /*
337 1.9 pgoyette * find_string()
338 1.9 pgoyette *
339 1.9 pgoyette * Search the address-to-offset translation table for matching an
340 1.9 pgoyette * address and len, and return the index of the entry we found. If
341 1.9 pgoyette * not found, returns index 0 which points to the "?" entry. (We
342 1.9 pgoyette * start matching at index 1, ignoring any matches of the "?" entry
343 1.9 pgoyette * itself.)
344 1.9 pgoyette */
345 1.9 pgoyette static int
346 1.9 pgoyette find_string(struct addr_xlt table[], size_t *count, const char *string,
347 1.9 pgoyette size_t len)
348 1.9 pgoyette {
349 1.9 pgoyette int i;
350 1.9 pgoyette
351 1.9 pgoyette for (i = 1; i < *count; i++)
352 1.9 pgoyette if (string == table[i].addr && len == table[i].len)
353 1.9 pgoyette return i;
354 1.9 pgoyette
355 1.9 pgoyette return 0;
356 1.9 pgoyette }
357 1.9 pgoyette
358 1.9 pgoyette /*
359 1.9 pgoyette * add_string()
360 1.9 pgoyette *
361 1.9 pgoyette * If the string and len are unique, add a new address-to-offset
362 1.9 pgoyette * entry in the translation table and set the offset of the next
363 1.9 pgoyette * entry.
364 1.9 pgoyette */
365 1.9 pgoyette static void
366 1.9 pgoyette add_string(struct addr_xlt table[], size_t *count, const char *string,
367 1.9 pgoyette size_t len)
368 1.9 pgoyette {
369 1.9 pgoyette
370 1.9 pgoyette if (find_string(table, count, string, len) == 0) {
371 1.9 pgoyette table[*count].addr = string;
372 1.9 pgoyette table[*count].len = len;
373 1.9 pgoyette table[*count + 1].offset = table[*count].offset + len + 1;
374 1.9 pgoyette (*count)++;
375 1.9 pgoyette }
376 1.9 pgoyette }
377 1.9 pgoyette
378 1.9 pgoyette /*
379 1.9 pgoyette * sysctl_kernhist_helper
380 1.9 pgoyette *
381 1.9 pgoyette * This helper routine is called for all accesses to the kern.hist
382 1.9 pgoyette * hierarchy.
383 1.9 pgoyette */
384 1.9 pgoyette static int
385 1.9 pgoyette sysctl_kernhist_helper(SYSCTLFN_ARGS)
386 1.9 pgoyette {
387 1.9 pgoyette struct kern_history *h;
388 1.9 pgoyette struct kern_history_ent *in_evt;
389 1.9 pgoyette struct sysctl_history_event *out_evt;
390 1.9 pgoyette struct sysctl_history *buf;
391 1.9 pgoyette struct addr_xlt *xlate_t, *xlt;
392 1.9 pgoyette size_t bufsize, xlate_s;
393 1.9 pgoyette size_t xlate_c;
394 1.12 christos const char *strp __diagused;
395 1.9 pgoyette char *next;
396 1.9 pgoyette int i, j;
397 1.9 pgoyette int error;
398 1.9 pgoyette
399 1.9 pgoyette if (namelen == 1 && name[0] == CTL_QUERY)
400 1.9 pgoyette return sysctl_query(SYSCTLFN_CALL(rnode));
401 1.9 pgoyette
402 1.9 pgoyette /*
403 1.9 pgoyette * Disallow userland updates, verify that we arrived at a
404 1.9 pgoyette * valid history rnode
405 1.9 pgoyette */
406 1.9 pgoyette if (newp)
407 1.9 pgoyette return EPERM;
408 1.9 pgoyette if (namelen != 1 || name[0] != CTL_EOL)
409 1.9 pgoyette return EINVAL;
410 1.9 pgoyette
411 1.9 pgoyette /* Find the correct kernhist for this sysctl node */
412 1.9 pgoyette LIST_FOREACH(h, &kern_histories, list) {
413 1.9 pgoyette if (h->s == rnode->sysctl_num)
414 1.9 pgoyette break;
415 1.9 pgoyette }
416 1.9 pgoyette if (h == NULL)
417 1.9 pgoyette return ENOENT;
418 1.9 pgoyette
419 1.9 pgoyette /*
420 1.9 pgoyette * Worst case is two string pointers per history entry, plus
421 1.9 pgoyette * two for the history name and "?" string; allocate an extra
422 1.9 pgoyette * entry since we pre-set the "next" entry's offset member.
423 1.9 pgoyette */
424 1.9 pgoyette xlate_s = sizeof(struct addr_xlt) * h->n * 2 + 3;
425 1.9 pgoyette xlate_t = kmem_alloc(xlate_s, KM_SLEEP);
426 1.9 pgoyette xlate_c = 0;
427 1.9 pgoyette
428 1.9 pgoyette /* offset 0 reserved for NULL pointer, ie unused history entry */
429 1.9 pgoyette xlate_t[0].offset = 1;
430 1.9 pgoyette
431 1.9 pgoyette /*
432 1.9 pgoyette * If the history gets updated and an unexpected string is
433 1.9 pgoyette * found later, we'll point it here. Otherwise, we'd have to
434 1.9 pgoyette * repeat this process iteratively, and it could take multiple
435 1.9 pgoyette * iterations before terminating.
436 1.9 pgoyette */
437 1.9 pgoyette add_string(xlate_t, &xlate_c, "?", 0);
438 1.9 pgoyette
439 1.9 pgoyette /* Copy the history name itself to the export structure */
440 1.9 pgoyette add_string(xlate_t, &xlate_c, h->name, h->namelen);
441 1.9 pgoyette
442 1.9 pgoyette /*
443 1.9 pgoyette * Loop through all used history entries to find the unique
444 1.9 pgoyette * fn and fmt strings
445 1.9 pgoyette */
446 1.9 pgoyette for (i = 0, in_evt = h->e; i < h->n; i++, in_evt++) {
447 1.9 pgoyette if (in_evt->fn == NULL)
448 1.9 pgoyette continue;
449 1.9 pgoyette add_string(xlate_t, &xlate_c, in_evt->fn, in_evt->fnlen);
450 1.9 pgoyette add_string(xlate_t, &xlate_c, in_evt->fmt, in_evt->fmtlen);
451 1.9 pgoyette }
452 1.9 pgoyette
453 1.9 pgoyette /* Total buffer size includes header, events, and string table */
454 1.9 pgoyette bufsize = sizeof(struct sysctl_history) +
455 1.9 pgoyette h->n * sizeof(struct sysctl_history_event) +
456 1.9 pgoyette xlate_t[xlate_c].offset;
457 1.9 pgoyette buf = kmem_alloc(bufsize, KM_SLEEP);
458 1.9 pgoyette
459 1.9 pgoyette /*
460 1.9 pgoyette * Copy history header info to the export structure
461 1.9 pgoyette */
462 1.9 pgoyette j = find_string(xlate_t, &xlate_c, h->name, h->namelen);
463 1.9 pgoyette buf->sh_listentry.shle_nameoffset = xlate_t[j].offset;
464 1.9 pgoyette buf->sh_listentry.shle_numentries = h->n;
465 1.9 pgoyette buf->sh_listentry.shle_nextfree = h->f;
466 1.9 pgoyette
467 1.9 pgoyette /*
468 1.9 pgoyette * Loop through the history events again, copying the data to
469 1.9 pgoyette * the export structure
470 1.9 pgoyette */
471 1.9 pgoyette for (i = 0, in_evt = h->e, out_evt = buf->sh_events; i < h->n;
472 1.9 pgoyette i++, in_evt++, out_evt++) {
473 1.9 pgoyette if (in_evt->fn == NULL) { /* skip unused entries */
474 1.9 pgoyette out_evt->she_funcoffset = 0;
475 1.9 pgoyette out_evt->she_fmtoffset = 0;
476 1.9 pgoyette continue;
477 1.9 pgoyette }
478 1.11 pgoyette out_evt->she_bintime = in_evt->bt;
479 1.9 pgoyette out_evt->she_callnumber = in_evt->call;
480 1.9 pgoyette out_evt->she_cpunum = in_evt->cpunum;
481 1.9 pgoyette out_evt->she_values[0] = in_evt->v[0];
482 1.9 pgoyette out_evt->she_values[1] = in_evt->v[1];
483 1.9 pgoyette out_evt->she_values[2] = in_evt->v[2];
484 1.9 pgoyette out_evt->she_values[3] = in_evt->v[3];
485 1.9 pgoyette j = find_string(xlate_t, &xlate_c, in_evt->fn, in_evt->fnlen);
486 1.9 pgoyette out_evt->she_funcoffset = xlate_t[j].offset;
487 1.9 pgoyette j = find_string(xlate_t, &xlate_c, in_evt->fmt, in_evt->fmtlen);
488 1.9 pgoyette out_evt->she_fmtoffset = xlate_t[j].offset;
489 1.9 pgoyette }
490 1.9 pgoyette
491 1.9 pgoyette /*
492 1.9 pgoyette * Finally, fill the text string area with all the unique
493 1.9 pgoyette * strings we found earlier.
494 1.9 pgoyette *
495 1.9 pgoyette * Skip the initial byte, since we use an offset of 0 to mean
496 1.9 pgoyette * a NULL pointer (which means an unused history event).
497 1.9 pgoyette */
498 1.9 pgoyette strp = next = (char *)(&buf->sh_events[h->n]);
499 1.9 pgoyette *next++ = '\0';
500 1.9 pgoyette
501 1.9 pgoyette /*
502 1.9 pgoyette * Then copy each string into the export structure, making
503 1.9 pgoyette * sure to terminate each string with a '\0' character
504 1.9 pgoyette */
505 1.9 pgoyette for (i = 0, xlt = xlate_t; i < xlate_c; i++, xlt++) {
506 1.9 pgoyette KASSERTMSG((next - strp) == xlt->offset,
507 1.9 pgoyette "entry %d at wrong offset %"PRIu32, i, xlt->offset);
508 1.9 pgoyette memcpy(next, xlt->addr, xlt->len);
509 1.9 pgoyette next += xlt->len;
510 1.9 pgoyette *next++ = '\0';
511 1.9 pgoyette }
512 1.9 pgoyette
513 1.9 pgoyette /* Copy data to userland */
514 1.9 pgoyette error = copyout(buf, oldp, min(bufsize, *oldlenp));
515 1.9 pgoyette
516 1.9 pgoyette /* If copyout was successful but only partial, report ENOMEM */
517 1.9 pgoyette if (error == 0 && *oldlenp < bufsize)
518 1.9 pgoyette error = ENOMEM;
519 1.9 pgoyette
520 1.9 pgoyette *oldlenp = bufsize; /* inform userland of space requirements */
521 1.9 pgoyette
522 1.9 pgoyette /* Free up the stuff we allocated */
523 1.9 pgoyette kmem_free(buf, bufsize);
524 1.9 pgoyette kmem_free(xlate_t, xlate_s);
525 1.9 pgoyette
526 1.9 pgoyette return error;
527 1.9 pgoyette }
528